Development of quantum sensors with optically accessible spin defects in nanomaterials
In plain English
AI plain-English summaryA new generation of sensors exploits atomic-scale defects in nanomaterials to detect magnetic fields, electric fields, and other signals with sensitivities thousands of times greater than conventional devices. These quantum sensors work by engineering specific imperfections—such as missing atoms or impurities—inside materials like nanodiamonds or MXene nanoparticles. The electron spins at these defect sites respond to external stimuli in ways that can be read out with light, enabling measurements at the scale of individual spins or single molecules. Conventional sensors cannot reach this level of precision. This PhD project has two phases. First, researchers will characterise the optical properties of nanodiamonds and MXene nanoparticles to identify which defects produce the best sensing performance. Second, they will test these nanosensors in real-world settings: monitoring pollutants in water or air, and detecting biological markers for disease. If successful, the work could lead to portable, highly sensitive detectors for environmental monitoring—tracking heavy metals or pathogens at trace concentrations—and for medical diagnostics, where quantum sensors might spot early signs of disease from tiny changes in cellular magnetic fields. The research is fundamental in nature, but similar defect-based quantum sensing has already enabled breakthroughs in MRI-like imaging at the nanoscale.
View original technical description
View the original record at the funder ↗
Researchers
Related Research
Grants with similar aims, by meaning.
Original classification
StudentshipPlain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research. Is something wrong? Let us know